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Erosion mechanism of refractories in a pyro-processing furnace for recycling lithium-ion secondary batteries

机译:用于回收锂离子二次电池的热处理炉中耐火材料的侵蚀机理

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The refractory lining in a furnace is always damaged and peels off when spent lithium-ion secondary batteries (LIB) are pyro-processed in a rotary kiln. To develop highly durable refractories and to elucidate the erosion behavior, various analyses such as scanning electron microscopy/energy dispersive X-ray spectroscopy, laser-induced breakdown spectroscopy, inductively coupled plasma atomic emission spectroscopy, ion chromatography, and X-ray diffraction were performed on the linings sampled from different sections of a refractory. Our results suggested the following mechanisms in Al2O3-SiO2-CaO refractory damage during pyro-processing of spent LIB packs. First, Li2O, P2O5, LiF, and HF were formed by thermal decomposition of electrolyte constituents of the lithium-ion secondary batteries. When HF reacts with SiO2, Al2O3, and CaO on the surface of the refractory, each fluoride that forms vaporizes and melts. When Li2O and P2O5 (as well as LiF) react with the Al2O3-SiO2 refractory, an Li2O-Al2O3-SiO2-P2O5(-LiF) phase with a low melting point forms and penetrates into the refractory through pores, grain boundaries, and cracks, resulting in peeling off.
机译:炉子中的耐火衬里始终损坏并在锂离子二次电池(Lib)在旋转窑中进行热处理时剥离。为了开发高耐用的耐火材料并阐明侵蚀行为,进行各种分析,例如扫描电子显微镜/能量分散X射线光谱,激光诱导的击穿光谱,电感耦合等离子体原子发射光谱,离子色谱和X射线衍射。在从耐火材料的不同部分采样的衬里上。我们的研究结果表明,在Pyro加工过程中,在Al2O3-SiO2-CaO难治损伤中提出了以下机制。首先,通过锂离子二次电池的电解质成分热分解来形成Li 2 O,P2O5,LiF和HF。当HF在耐火材料表面上与SiO 2,Al 2 O 3和CaO反应时,形成蒸发和熔化的每种氟化物。当Li 2 O和P2O5(以及LiF)与Al 2 O 3-SiO 2耐火反应时,用低熔点形成Li 2 O-Al 2 O 3-SiO2-P2O5(-LIF)相,通过孔,晶界和裂缝形成耐火材料,导致剥离。

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